E5 · Publication Volume 27

Drillhole and Core Views

logs, tracks, intervals, images, assays and depth synchronisation

Learning objectives

  • Explain the analytical and evidence boundary for logs, tracks, intervals, images, assays and depth synchronisation.
  • Translate the geological task into explicit entities, visual channels and state transitions.
  • Test correctness, reading error, uncertainty communication and accessibility with ordinary and adversarial fixtures.
  • Produce a depth-synchronised drillhole and core evidence view with interval diagnostics from synthetic evidence and defend every transformation.

The lesson is complete only when the learner can identify the visual claim, reproduce the inspected state, cite the governing evidence, explain uncertainty and show that an equivalent core task remains possible through the required fallback. A polished screenshot without state, source and evaluation evidence remains unverified.

This lesson is general and institution-neutral. It uses no real company, individual, property, project or identifiable place. Generic roles such as evidence custodian, visualisation designer, domain reviewer and release reviewer describe responsibilities without implying affiliation.

Analytical decision

Declare the hole identity, depth domain, interval boundary convention, units, survey version and source of every track before alignment. Measured depth, vertical depth, recovered-core position, image pixels and sample identifiers are related but not interchangeable axes. A visual alignment that ignores recovery loss, depth shifts or overlapping intervals can create a false geological coincidence. The view must make alignment transforms and gaps inspectable.

Write the intended conclusion and the evidence required to support or refuse it before choosing layout or interaction. Identify a comparison baseline and the cost of a false positive, false negative and unresolved result. A design requirement is testable only when an observer, input, state, expected output and pass condition are named.

Record non-goals as carefully as goals. A view intended for evidence inspection does not automatically support editing, publication or operational control. Restricting scope prevents an apparently convenient interface from acquiring authority that its evidence and validation do not support.

Scientific content

A drillhole display is a coordinated set of tracks over a declared primary depth domain. Categorical logs, continuous measurements, intervals, point events, core imagery and assay values need different marks and missing-state rules. Interval boundaries require half-open or closed conventions; touching intervals differ from overlaps. Image stretching changes apparent feature thickness. Linking to plan, section and three-dimensional traces requires stable hole and interval identities rather than nearest-screen matching.

Distinguish data semantics from portrayal semantics. A geological object retains identity, geometry, support, status and lineage even when invisible; a mark has position, form, colour, texture, opacity and interaction state only within a view. The mapping between them is versioned and may be many-to-one through aggregation or one-to-many through multiple representations.

Perception is part of the measurement system. Position, length, area, angle, colour and depth are decoded with different accuracy and are affected by context. Use the most accurately read channel compatible with the task, reserve emphasis, and verify that a reader sees the intended ordering and distinctions rather than relying on the designer’s familiarity.

View and interaction model

Define each track with dataset version, hole key, source depth fields, target depth domain, transform, unit, support, null policy, scale, renderer and query fields. A synchronisation table maps source coordinates to the primary axis and records gaps, duplicates, reversals and extrapolation. The viewport shares a depth range but each track keeps its own value scale. Selection is an interval set with explicit boundaries and can be projected into spatial views through the selected survey version.

Separate source data, semantic model, analytical transformation, portrayal specification, interaction state and rendered output. Each boundary has an input contract, deterministic operation, structured diagnostics and output fingerprint. Rendering never becomes the authoritative store for values or identities, and interface defaults never fill missing scientific metadata.

The state model supports a clean initial state, deep link, save, restore, undo, reset, comparison and static export. Derived state is recalculated from canonical inputs. Concurrency or delayed loading cannot change selection membership, filter meaning or scenario identity; if required content is unavailable, the view exposes a pending or failed state with retained context.

Visual invariants and constraints

| Invariant | Required evidence | Failure behaviour | | --- | --- | --- | | Semantic identity survives every view and state | Stable object identifiers and version | Block linkage or label the object unresolved | | Visual encoding matches the declared quantity and support | Field definition, units, support and style rule | Remove the encoding until the contract is repaired | | Observation, interpretation, alternative and unknown remain distinct | Epistemic status and legend test | Preserve the states and issue a visible conflict | | Filtering, selection, camera and scenario state are inspectable | Serialised state and population counts | Do not publish an unexplained view | | The chapter artefact remains reproducible | Inputs, transforms, parameters, tests and fingerprints for a depth-synchronised drillhole and core evidence view with interval diagnostics | Quarantine the derivative without replacing its sources |

Test invariants at import, transform, state transition, render, export and replay. A pixel snapshot can detect accidental layout change but cannot prove identity, quantity, membership or accessibility. Combine semantic assertions, numerical comparisons, task results, structural inspection and selected image comparisons. Every failure reports object, state, rule, observed result and expected condition.

Hard failures block only affected conclusions or derivatives and never suppress valid source evidence. Warnings state consequence and review path. Informational findings are not styled like errors. Severity follows scientific and decision consequence, not implementation convenience or the visual prominence of the affected mark.

Quantitative evaluation

For a source landmark at depth d_s mapped to target depth d_t, alignment residual is r=d_t-T(d_s) under transform T. Report residual quantiles, unmapped length, duplicated length, interval overlap length, recovery ratio and image stretch. For a selected interval [a,b), ensure displayed length and queried records use the same closure rule. A one-pixel line may represent a non-zero depth range, so interaction returns the data support covered by the hit area.

Every reported measure includes population, support, unit, exclusions, aggregation, uncertainty where available, evaluation state and version. Stratify results when averaging can hide a consequential subgroup, device mode, scale, scenario or evidence class. A faster interface is not better when it increases wrong confident answers or hides unresolved evidence.

Define the reference answer and allowable tolerance before testing. Where expert interpretation is non-unique, score evidence retrieval, assumption disclosure, alternative comparison and appropriate unresolved behaviour instead of pretending that one geometry is the only correct answer. Preserve raw observations beside aggregate scores so review can diagnose why a task failed.

Evidence and uncertainty

Separate uncertainty in acquisition, location, classification, transformation, interpretation, model choice and visual reading. A thicker boundary, translucent surface or broad envelope is not self-explanatory. The view and its evidence card identify which quantity is uncertain, the spatial or temporal support, the construction method, calibration scope where one exists and the consequence for the current decision.

Preserve received objects, accepted semantic views, analytical derivatives and delivery artefacts as distinct versions. A rendered mark references the exact derivative and can be traced to inputs and activities. Contradictory evidence remains selectable. Missing or invalid metadata produces an unknown, conflict or blocked status; it does not trigger a guessed colour, coordinate, category or confidence.

Evidence completeness and visual clarity are evaluated separately. Removing a difficult record may make a view cleaner while making the scientific conclusion weaker. Every filter reports eligible, visible, selected, excluded and unresolved counts, with reasons. Aggregation retains links to members and exposes when a minority class or narrow feature disappears at the chosen scale.

Interaction, state and interoperability

Interaction is a typed transformation of analytical state. Selection identifies objects; filtering changes eligibility; focus directs attention; camera and clipping change projection; scenario changes an interpretation bundle; editing creates a new domain version. Controls name the state they change and show the result. Consequential changes enter history with prior and resulting fingerprints and can be undone or replayed.

Views exchange stable semantic identifiers, declared ranges and state events, never screen positions or colours as identity. When an object has no representation in a receiving view, the view reports it as unavailable rather than silently dropping it. Counts and evidence cards allow a reviewer to reconcile the same selection across plan, section, three-dimensional, log and table representations.

A saved analytical state contains dataset versions, transforms, classification and style versions, filters, selection, scenario, camera, clipping, layout and unresolved findings. A static representation serialises that state and supplies ordered figures, legends, summaries and evidence tables. It must preserve the claim and support even though exploratory gestures are no longer available.

Accessibility and responsive fallback

Every consequential state and control has a programmatic name, role, value and status, preferably through native structured elements. Keyboard order follows the analytical sequence; focus is visible and not hidden by overlays. Pointer and touch targets have a non-drag alternative. Colour, spatial position, hover and animation are never the sole carriers of identity, warning or uncertainty.

Complex graphics provide a concise purpose and conclusion, a detailed description of relationships, and access to the underlying structured evidence. State changes announce only information needed to continue the task. Dense scenes offer search, grouping and list navigation rather than thousands of meaningless focus stops. User zoom and text spacing do not remove controls or evidence.

Responsive layouts preserve reading and focus order, shared state, counts, legends and source access. At narrow widths, views may stack or use explicit tabs, but hidden panels remain discoverable and their selected-object counts remain visible. The static fallback records current state and limitations and is verified against the same task-and-evidence assertions as the interactive version.

Governance and review

Assign responsibilities to generic roles: evidence custodian preserves received material; domain reviewer defines geological meaning and consequence; visualisation designer implements portrayal and state; accessibility reviewer tests cross-mode access; independent validator challenges claims; release reviewer accepts, blocks or scopes publication. No role can erase contradictory evidence or approve its own unresolved hard failure without recorded review.

A portrayal change is versioned when it can alter interpretation: field choice, transform, aggregation, class breaks, palette, line grammar, projection, exaggeration, smoothing, camera default, clipping, opacity, filter, label priority or fallback. Regression fixtures compare expected membership, geometry, values, reading tasks and accessibility semantics, not only image pixels.

Exceptions state scope, rationale, evidence, risk, approving role, affected versions and review trigger. They do not turn unknown into known or a failed task into success by relabelling. The website hosting this lesson has no ownership or scientific-authority role; it only delivers the tutorial and is not part of the scientific evidence chain.

Integration checkpoint

a depth-synchronised drillhole and core evidence view with interval diagnostics
a depth-synchronised drillhole and core evidence view with interval diagnostics

Read the diagram as a reasoning map for logs, tracks, intervals, images, assays and depth synchronisation. Solid relationships are required data or state transitions; checks expose assumptions and failure paths; the evidence card and static path keep the result reviewable outside the interactive scene. No element represents a particular product, company, person or named site.

Integrate a depth-synchronised drillhole and core evidence view with interval diagnostics into the cumulative SYN-VIS workbench. Re-run earlier task, identity, legend, state and fallback fixtures. Record which assumptions changed, which views consume the new state and whether any previously accepted conclusion must be superseded.

Synthetic worked example

SYN-VIS-07 combines synthetic logging, core strips, sample intervals and a trajectory. A 0.6 metre recovery gap causes later image features to drift relative to measured depth when the image is stretched uniformly. The corrected synchronisation table preserves a visible gap and maps recovered-core coordinates piecewise. One overlapping sample is flagged, not painted over. Selecting an assay interval highlights its exact half-open depth support in the log, the matching trajectory segment and its source card.

  1. Preserve the received evidence and state the target decision without choosing a visual form.
  2. Resolve identity, quantity, support, status, eligible population and uncertainty source.
  3. Apply the versioned transform, portrayal and state transition while retaining diagnostics.
  4. Test the answer, cited evidence and fallback; then issue accept, block or unresolved with reasons.

Practice and assessment

Build a depth-synchronised drillhole and core evidence view with interval diagnostics against SYN-VIS-07. Preserve the received package. Create one ordinary fixture, one boundary fixture, one deliberately misleading portrayal, one accessibility stress case and one unresolved-evidence case. Submit the task model, semantic and visual contracts, serialised state, interactive or inspectable artefact, static fallback, measured results and release decision.

Acceptance criteria:

  • The intended geological decision, eligible evidence and consequence of error are explicit.
  • Every visible quantity has identity, support, unit, status, transform and version.
  • Observation, interpretation, alternative, missing and unknown states remain distinguishable.
  • Selection, filters, camera, clipping, scenario and hidden evidence can be inspected and replayed.
  • The same core answer and evidence citation are reachable by required input modes and static fallback.
  • All blocking failures remain visible and machine-readable; no source evidence is overwritten.

Run a structured review in which a second reviewer receives only the submitted package. The reviewer must reproduce the target state, answer the task, cite the same evidence objects, identify the main limitation and explain any unresolved result. Record discrepancies as findings against the earliest responsible layer and supersede, rather than overwrite, corrected artefacts.

Common failure modes

  • Treating measured depth, vertical depth and image position as one axis.
  • Stretching core imagery across recovery gaps.
  • Painting overlapping intervals in file order.
  • Sharing value scales across tracks with incompatible units.
  • Linking records by screen proximity rather than stable identity.

These failures substitute appearance or convenience for evidence. Diagnose the earliest boundary where the unsupported assumption entered, restore the source statement and intended task, make transformation and state explicit, run dependent fixtures and supersede the affected derivative. A warning written after the image is not a repair when the visual claim remains dominant.

Sources and further reading